光降解
光催化
可见光谱
催化作用
锰
环境修复
化学
结晶紫
材料科学
废水
介孔材料
化学工程
降级(电信)
环境化学
亚甲蓝
污染
环境科学
有机化学
环境工程
工程类
病理
生态学
生物
电信
医学
光电子学
计算机科学
作者
Iqra Rabani,Chinna Bathula,Rabia Zafar,Muhammad Shoaib Tahir,Ye-Jee Park,Hyun‐Seok Kim,Mu. Naushad,Young‐Soo Seo
标识
DOI:10.1016/j.jcis.2021.10.149
摘要
Water pollution via hazardous organic pollutants poses a high threat to the environment and globally imperils aquatic life and human health. Therefore, the elimination of toxic organic waste from water sources is vital to ensure a healthy green environment. In the current work, we synthesized α-MnO2-Fe3O4 3D-flower like structure using a two-step hydrothermal method and explored the combination in a visible-light-assisted photocatalytic degrdation of dyes. The attained high specific surface area of 82 m2/g with mesoporous nature of α-MnO2 and Fe3O4 together can generate more active sites after exposure to visible light, leading to remarkable photodegradation performance. Significantly, twofold higher dye (methylene blue, MB (94.8%/120 min; crystal violet, CV (93.7%/120 min)) and drug (LVO 91%/90 min) photodegradations were observed with α-MnO2-Fe3O4 as catalyst than pure α-MnO2 and Fe3O4 at pH 6, respectively. This is attributed to the higher surface area and synergistic effect between Mn and Fe. More than 85% stability was observed with optimized catalysts employing MB and CV dyes, demonstrating the excellent reusability of the α-MnO2-Fe3O4. The underlying mechanism indicates that the formation of reactive oxygen species predominantly plays a role in the photodegradation of dyes under visible light. Consequently, these new insights will shed light on the practical applications of the α-MnO2-Fe3O4 3D-flower-like spherical structure for eco-friendly remediation via wastewater treatment.
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